–Set A Key Paper 3 – May, 2009 8

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Paper 3 –Set A Key
Regn No: _________________
Name: ___________________
(To be written by the candidates)
8th NATIONAL CERTIFICATION EXAMINATION – May, 2009
FOR
ENERGY MANAGERS & ENERGY AUDITORS
PAPER – 3:
Energy Efficiency in Electrical Utilities
Date: 24.05.2009
Timings: 0930-1230 HRS
Duration: 3 HRS
Max. Marks: 150
General instructions:
o
o
o
o
1
Please check that this question paper contains 8 printed pages
Please check that this question paper contains 64 questions
The question paper is divided into three sections
All questions in all three sections are compulsory
All parts of a question should be answered at one place
Section – I: OBJECTIVE TYPE
(i)
(ii)
(iii)
1
Marks: 50 x 1 = 50
Answer all 50 questions
Each question carries one mark
Please hatch the appropriate oval in the OMR answer sheet with Black Pen or Black
HB Pencil, as per instructions
Select the wrong statement:
a) ‘Heat Rate’ reflects the efficiency of generation.
b) ‘Heat Rate’ is the heat input in kilo Calories or kilo Joules, for generating ‘one’ kilo
Watt of electrical output.
c) ‘Heat Rate’ is inverse of the efficiency of power generation.
d) design ‘Heat Rate’ of a 500MW thermal generating unit is lower than that of a 110 MW
thermal generating unit.
2
In an industry, if the drawl over a recording cycle of 30 minutes is :
2500 kVA for 10 minutes
3600 kVA for 6 minutes
4100 kVA for 12 minutes
3800 kVA for 2 minutes
The MD recorder will be computing MD as
a) 3446
3
b) 3600
c) 3800
d) 4100
A bulk power factor correction system which is left connected to an installation where the load
has reduced considerably may result in
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Paper 3 –Set A Key
a) leading power factor at input electric supply
b) damage to the installation cables
c) considerable reduction in maximum demand
d) a reduced supply tariff
4
The total loss for a transformer loading at 60% and with no load and full load losses of 3 kW
and 25 kW respectively, is
a) 3 kW
5
b) 12 kW
c) 18 kW
d) 25 kW
A pure resistive load in an alternating current (AC) circuit draws only
a) lagging reactive power
c) leading reactive power
6
The nearest kVAr compensation required for improving the power factor of a 1000 kW load
from 0.95 leading power factor to unity power factor is
a) 328 kVAr
7
b) 750 kVAr
c) 1000 kVAr
b) less
c) same
d) dependant on the connected load
The largest potential for electricity savings with variable speed drives is generally in
a) variable torque applications
c) conveyor belt applications
9
b) constant torque applications
d) balance torque applications
A 7.5 kW, 415 V, 15 A, 970 RPM, 3 phase rated induction motor with full load efficiency of
86% draws 7.5 A and 3.23 kW of input power. The percentage loading of the motor is about
a) 37 %
10
d) none of the above
The ratings of the PF correction capacitors at motor terminals for a 37 kW induction motor at
3000 rpm synchronous speed will be---------------------in comparison to the same sized induction
motor at 1500 rpm synchronous speed
a) more
8
b) active power
d) active apparent power
b) 43 %
c) 50%
d) none of the above
Select the correct statement?
a) efficiency of an induction motor remains same at all the loading
b) squirrel cage induction motors are comparatively more efficient than Slip ring induction
motors of the same ratings.
c) power factor of an induction motor remains constant during 50 -100% loading conditions
d) slip of the induction motor is more at the full load than at the part load
11
A two pole induction motor operating at 50 Hz, with 1% slip will run at an actual speed of
a) 3000 RPM
12
b) 3030 RPM
c) 2970 RPM
d) none of the above
A super thermal power station of 2500 MW installed capacity generated
14,000 million units in a year. Its annual Plant Load Factor (PLF) is:
a) 60%
b) 79%
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c) 64%
d) none of the above
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Paper 3 –Set A Key
13
Select the incorrect statement
a) low speed Squirrel cage induction motors are normally less efficient than high speed
Squirrel cage induction motors
b) the capacitor requirement for PF improvement at induction motor terminals
decreases with decrease in rated speed of the induction motors of the same sizes
c) induction motor efficiency increases with increase in its rated capacity
d) totally-enclosed, fan cooled (TEFC) motors are more efficient than Screen–protected, dripproof (SPDP) induction motors
14
The efficiency of compressed air system is around
a) 10%
15
b) 50%
d) 90%
FAD refers to the compressed air at
a) at ISO stated conditions
16
c) 60%
b) Inlet conditions
c) at outlet conditions
d) at STP
Select the incorrect statement:
a) compressor efficiency will be reduced by about 2 percent for every 250 mm WC pressure
drop across the air inlet filters.
b) every 40C rise in inlet air temperature results in a higher energy consumption by 1 % to
achieve equivalent output
c) an increase of 5.50C in the inlet air temperature to the second stage results in a 2 %
increase in the specific energy consumption.
d) compressed air receiver volume should be 100% of the rated hourly free air output
17
Which of the following is not a part of the vapour compression refrigeration system
a) compressor
18
b) pure water
c) freon
b) 9.48
c) 300
b) 64.5
d) none of the above
The term Refrigeration means
b) removal of heat
d) replacement of heat
For fans, the relation between power P and speed N is
N1
P
a) 1 =
P2 N 2
23
d) none of the above
c) 261.6
a) addition of cooling
c) removal and relocation of heat
22
d) lithium bromide
The refrigeration load in TR when 30 m 3/hr of water is cooled from a 14 o C to 6.5 o C is about
a) 74.4
21
d) absorber
The COP of a vapour compression refrigeration system is 3.0. If the power input to
compressor is 100 kW , the tonnage of refrigeration system is given by
a) 85.3
20
c) condenser
The refrigerant used in vapour absorption systems is
a) steam
19
b) evaporator
2
N1
P
b) 1 =
P2 N 2 2
3
N1
P
c) 1 =
P2 N 2 3
d) none of the above
Friction loss in a piping system carrying fluid is proportional to
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Paper 3 –Set A Key
a) fluid flow
24
c)
1
fluid flow
b) forward- curved
c) backward-inclined
b) vapour absorption chiller
d) none of them
b) static head
d) suction head
When the local static pressure in a fluid reaches a level below the vapor pressure of the liquid
at the actual temperature, ____________ may occur in a pump.
a) water hammering
28
d) tube- axial
The value, by which the pressure in the pump suction exceeds the liquid vapour pressure, is
expressed as
a) net positive suction head available
c) dynamic head
27
1
(fluid flow)2
Ammonia can be used as a refrigerant in
a) vapour compression chiller
c) both vapour compression and absorption chillers
26
d)
_____ fans are known as “non-overloading“ because change in static pressure do not overload
the motor
a) radial
25
b) (fluid flow)2
b) water chilling
c) cavitation
d) none of the above
Installation of "exclusive" transformer for lighting has following advantage
a) "Voltage" fluctuations in lighting circuit can be minimized by isolating from the power
feeders.
b) This will reduce the voltage related problems, which in turn increases the efficiency of the
lighting system.
c) With proper control device “over voltage” that might occur during lean load or off-peak can
be avoided, in turn excess energy consumption and improved lamp life
d) all the above
29
Parallel operation of two identical fans in a ducted system
a) will double the flow
c) will not double the flow
30
Normally the guaranteed best approach a cooling tower can achieve is
a) 5oC
31
b) will double the fan static pressure
d) will increase flow by more than two times
b) 8oC
c) 12oC
d) 2.8 oC
Select the wrong statement --a) for a given heat rejection duty, a higher range will reduce the circulating water flow rate
b) when the cycle of concentration is left at one, all water left in the cooling tower after
evaporation needs to be removed as blowdown.
c) a better indicators for cooling tower performance is Range
d) a cooling tower size will be greater for 20oC Wet bulb temperature (WBT) than for a 30oC
WBT, for the same circulation, range and approach
32
Which of the following ambient conditions will evaporate minimum amount of water in a cooling
tower
a) 35oC DBT and 30oC WBT
c) 38oC DBT and 37oC WBT
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b) 38oC DBT and 31oC WBT
d) 35oC DBT and 29oC WBT
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Paper 3 –Set A Key
33
Input power to the motor driving a pump is 30 kW. The motor efficiency is 0.9. The power
transmitted to the water is 16.2 kW. The pump efficiency is
a) 60%
34
b) 90%
c) 54%
d) none of the above
A 500 cfm reciprocating compressor is operating to meet a constant demand of 300 cfm. The
least cost energy efficient solution will be
a) load and unload
b) reducing the speed of compressor by increasing the compressor pulley size appropriately
c) variable frequency drive
d) reducing the speed of compressor by reducing the motor pulley size appropriately
35
Which of the following lamp has the highest efficacy?
a) metal halide
36
b) halogen lamps
b) fluid coupling
d) energy efficient motor
The inputs required for an automatic power factor controller using kVAR control
a) current
38
b) voltage
c) capacitance
b) discharge head
b) 388.5
b) lumens/Watt
c) 469
d) none of the above
c) Watt/Lux
d) Watt/lumens
A fluorescent tube light fitted with an electronic choke will
a) operate at 50 Hz
c) operate at 0.5 power factor
44
b) centrifugal compressor
d) none of the above
Luminous efficacy of a lamp is given by
a) Lux/Watt
43
d) motor efficiency
A fan is operating at 970 RPM developing a flow of 3000 Nm 3/hr. at a static pressure of 650
mmWC. If the speed is reduced to 700 RPM, the static pressure (mmWC) developed will be
a) 244.3
42
c) density of fluid
The flow output of which of the following changes with the discharge pressure
a) reciprocating compressor
c) screw compressor
41
b) 10 lumen per square meter
d) 1 lumen per square feet
The efficiency of a pump does not depend on
a) suction head
40
d) both a and b
The unit of one lux is
a) 1000 lumen per square feet
c) 1 lumen per square meter
39
d) HPSV
Harmonics are generated by
a) variable frequency drive
c) eddy current drive
37
c) HPMV
b) not need a starter
d) none of the above
An engineering industry which was operating with a maximum demand of 500 kVA at 0.9
power factor improved its power factor to 0.99 by installing power factor correction capacitors
near the load centres. The percentage reduction in distribution losses within the plant will be
a) 17.35%
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b) 1.21%
c) 86.75%
d) none of the above
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Paper 3 –Set A Key
45
Lower load side power factor for a DG Set:
a) demands higher excitation currents and results in increased losses
b) results in higher kVA loading of generator
c) results in lower operating efficiency and higher specific fuel consumption of DG set
d) all the above
46
The main precaution to be taken care by the waste heat recovery device manufacturer to
prevent the problem in a DG set during operation is:
a) voltage unbalance on generator
c) excessive steam generation
47
Use of soft starters for induction motors results in
a) lower mechanical stress
c) higher maximum demand
48
b) back pressure on engine
d) turbulence in exhaust gases
b) lower power factor
d) all the above
Which of the following refrigeration systems uses vacuum for operation ?
a) vapour compression system using R-11
b) vapour compression system using HFC 134A
c) vapour absorption system using lithium bromide –water
d) none of the above
49
Which of the following electrical equipment has the highest efficiency ?
a) synchronous motor
c) induction motor
50
b) dc shunt motor
d) transformer
Select the incorrect statement:
a) transformers operating near saturation level create harmonics
b) devices that draw sinusoidal currents when a sinusoidal voltage is applied create harmonics
c) harmonics are multiples of the supply frequency
d) harmonics occur as spikes at intervals which are multiples of the supply frequency
…….……. End of Section – I ………..….
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Paper 3 –Set A Key
Section – II: SHORT DESCRIPTIVE QUESTIONS
(i)
(ii)
S-1
Marks: 8 x 5 = 40
Answer all Eight questions
Each question carries Five marks
Briefly explain transformer losses and how the total transformer losses
at any load level can be computed.
Answer:
Transformer losses consist of two parts: No-load loss and Load loss
1. No-load loss (also called core loss) is the power consumed to sustain the
magnetic field in the transformer's steel core. Core loss occurs whenever the
transformer is energized; core loss does not vary with load. Core losses are
caused by two factors: hysteresis and eddy current losses. Hysteresis loss is
that energy lost by reversing the magnetic field in the core as the magnetizing
AC rises and falls and reverses direction. Eddy current loss is a result of
induced currents circulating in the core.
2. Load loss (also called copper loss) is associated with full-load current flow in
the transformer windings. Copper loss is power lost in the primary and
secondary windings of a transformer due to the ohmic resistance of the
windings. Copper loss varies with the square of the load current. (P=I2R).
For a given transformer, the manufacturer can supply values for no-load loss, PNOLOAD, and load loss, PLOAD. The total transformer loss, PTOTAL, at any load level can
then be calculated from:
PTOTAL = PNO-LOAD+ (% Load/100)2 x PLOAD
Where transformer loading is known, the actual transformers loss at given load can
be computed as:

S-2
No load loss 
2
 kVA Load 

 full load loss
 Rated kVA 
The power input to a three phase induction motor is 45 kW. If the
induction motor is operating at a slip of 2% and with total stator losses
of 1.80 kW, find the total mechanical power developed.
Solution:
Stator input: 45kW
Stator losses: 1.80 kW
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Paper 3 –Set A Key
Stator output: 45-1.80= 43.2kW
OR Rotor Input= 43.2 kW
Slip= 2%
Mechanical Power Out put= ( 1-s)x Rotor Input
= 42.336 kW
S-3
List any five energy conservation opportunities in pumping system.
Answer:
1.
2.
3.
4.
5.
6.
Avoid over sizing of pumps
Consider impeller trimming and other “easy-to implement” alternatives
Consider variable speed drives wherever possible
Operate pumps near best efficiency point.
Modify pumping system/pumps losses to minimize throttling.
Stop running multiple pumps - add an auto-start for an on-line spare or add a
booster pump in the problem area.
7. Conduct water balance to minimise water consumption
8. Replace old pumps by energy efficient pumps
S-4
A water pump of a process plant is analysed for efficiency and following
data is collected:
Flow: 60 m3/hr, Total head: 30 meters, Power drawn by motor– 7.4 kW,
Motor efficiency – 90%
Determine the pump efficiency
Answer
Hydraulic power
Hydraulic power
Power input to pump
Pump efficiency
S-5
Q (m3/s) x total head (m) x 1000 x 9.81
/1000
(60/3600) x 30 x 1000 x 9.81/1000
4.905kW
7.4x 0.9
6.66 kW
4.905/6.66
73.6 %
Name any five methods of capacity controls for fans (Note: no
explanation is required)
Answer
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Paper 3 –Set A Key
S-6
1.
2.
3.
Pulley Change
Damper Controls
Inlet Guide Vanes
4.
Variable Speed Drives
5.
Parallel Operation
A genset is operating at 700 kW loading with 450OC exhaust gas
temperature: The DG set generates 8 kg gas/ kWh generated, and
specific heat of gas at 0.25 kCal/ kg OC. A heat recovery boiler is
installed after which the exhaust temperature drops by 260 oC. How much
steam will be generated at 3 kg/ cm2 with enthalpy of 650.57 kCal/ kg.
Assume boiler feed water temperature as 60oC.
Answer
= 700 kWh x 8 kg gas generated/ kWh output x 0.25 kCal/ kg oC x (450oC-260
oC) =2,66,000 kCal/hr
Steam generation = 2,66,000 kCal/hr / (650.57 kCal/kg – 60) = 450 kg/ hr.
S-7
An energy audit of a fan was carried out. It was observed that fan was
delivering 15,000 Nm3/hr of air at static pressure rise of 60 mm WC. The
power measurement of the 3-phase induction motor coupled with the fan
recorded 1.92 kW/ phase on an average. The motor operating efficiency
was assessed as 0.88 from the motor performance curves. What would
be the fan static efficiency ?.
Answer:
Q = 15,000 Nm3 / hr.= 4.1667 m3/sec ,
SP = 60 mmWC,
St = ?,
Power input to motor= 1.92x3=5.76 kW
P ower input to fan shaft=5.76 x0.88=5.067 kW
Fan static  =
=
Volume in m3/sec x Pst in mmWc
102 x Power I/p to shaft
4.167 x 60
102 x 5.067
=0.484
= 48.4%
S-8
Discuss in brief any three methods by which energy can be saved in an
air conditioning system.
Answer:
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Paper 3 –Set A Key
a) Cold Insulation
Insulate all cold lines / vessels using economic insulation thickness to minimize
heat gains; and choose appropriate (correct) insulation.
b) Building Envelop
Optimise air conditioning volumes by measures such as use of false ceiling and
segregation of critical areas for air conditioning by air curtains.
c) Building Heat Loads Minimisation
Minimise the air conditioning loads by measures such as roof cooling, roof
painting, efficient lighting, pre-cooling of fresh air by air- to-air heat exchangers,
variable volume air system, otpimal thermo-static setting of temperature of air
conditioned spaces, sun film applications, etc.
e) Process Heat Loads Minimisation
Minimize process heat loads in terms of TR capacity as well as refrigeration level,
i.e., temperature required, by way of:
i)
Flow optimization
ii)
Heat transfer area increase to accept higher temperature coolant
iii)
Avoiding wastages like heat gains, loss of chilled water, idle flows.
iv)
Frequent cleaning / de-scaling of all heat exchangers
-------- End of Section – II ---------
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Paper 3 –Set A Key
Section – III: LONG DESCRIPTIVE QUESTIONS
(i)
(ii)
L-1
Marks: 6 x 10 = 60
Answer all Six questions
Each question carries Ten marks
An energy audit of electricity bills of a process plant was conducted. The plant
has a contract demand of 3000 kVA with the power supply company. The
average maximum demand of the plant is 2300 kVA/month at a power factor of
0.95. The maximum demand is billed at the rate of Rs.500/kVA/month. The
minimum billable maximum demand is 75 % of the contract demand. An
incentive of 0.5 % reduction in energy charges component of electricity bill are
provided for every 0.01 increase in power factor over and above 0.95. The
average energy charge component of the electricity bill per month for the
company is Rs.11 lakhs.
The plant decides to improve the power factor to unity. Determine the power
factor capacitor kVAr required, annual reduction in maximum demand charges
and energy charge component. What will be the simple payback period if the
cost of power factor capacitors is Rs.800/kVAr.
Answer
kW drawn
Kvar required to improve power factor from 0.95
to 1
Cost of capacitors @Rs.800/kVAr
Maximum demand at unity power factor
75 % of contract demand
Reduction in Demand charges
Percentage reduction in energy charge from 0.95
to 1 @ 0.5 % for every 0.01 increase
Monthly energy cost component of the bill
Reduction in energy cost component
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Bureau of Energy Efficiency
2300 x 0.95 =
2185 kW
kW ( tan 1 – tan 2)
kW ( tan (cos-1) – tan (cos-2)
2185 ( tan (cos– tan (cos2185(0.329 - 0)
719 kVAr
Rs.5,75,200
2185/1 = 2185 kVA
3000x0.75=2250 kVA
2300-2250=50kVa, as the plant has to
pay MD charges on minimum billable
demand of 2250, and not on the
improved MD of 2185 kVA in this case
50kVA/month x 12 months x Rs.500
kVA/ month= Rs.3,00,000
2.5 %
Rs.11,00,000
11,00,000 x (2.5/100)
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Paper 3 –Set A Key
Annual reduction
Savings in electricity bill
Investment
Payback period
L-2
Rs.27,500/month
Rs.27,500 x 12
Rs.3,30,000
Rs.6,30,000
Rs.5,75,200
5,75,200/6,30,000
0.91 years or 11months
Fill in the blanks for the following
1. The intersection point of the pump curve and the system curve is
called_____________
2. Presenting the load demand of a consumer against time of the day is
known as______
3. The vector sum of active power and reactive power is ____.
4. The ratio of isothermal power to actual measured input power of an air
compressor is known as------:
5. The input energy for refrigeration in vapour absorption refrigeration
plants is____
6. The fan which is choosen for moving large flows against relatively low
pressures is_____ curved fan.
7. The system resistance in a fan ducting system refers to ____________
pressure
8. The friction loss, on the liquid being moved, in pipes, valves and
equipment in the system is called ________ head.
9. The ratio of luminous flux emitted by a lamp to the power consumed
by the lamp is called_________________.
10. In an amorphous core distribution transformer, ______ loss is less
than a conventional transformer
ANS:
1 Best efficiency point / pump operating point/ duty point
2. Load curve
3. Apparent Power
4. Isothermal efficiency
5. Thermal energy (or steam or waste heat or gas or any energy related to
thermal energy)
6. Forward Curve
7. Static
8.Dynamic/friction head
9.Luminous efficacy
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Paper 3 –Set A Key
10. No load
L-3
A free air delivery test was carried out before conducting a leakage test on a
reciprocating air compressor in an engineering industry and following were the
observations:
10 m3
0.2 kg / cm2g
:
7.0 kg / cm2g
3
0.2 m
1.026 kg / cm2 abs.
4.5 minutes
Receiver capacity
:
Initial pressure
:
Final pressure
Additional hold-up volume :
Atmospheric pressure
:
Compressor pump-up time :
The following was observed during the conduct of leakage test during the lunch time
when no pneumatic equipment/ control valves were in operation:
a) Compressor on load time is 30 seconds and unloading pressure is 7
kg/cm2g
b) Average power drawn by the compressor during loading is 90 kW
c) compressor unload time and loading pressure are 70 seconds and 6.6
kg/cm2 g respectively.
Find out the following:
(i) Compressor output in m3/hr(neglect temperature correction)
(ii) Specific Power Consumption, kW/ m3/hr
(iii) % air leakage in the system
(iv) leakage quantity in m3/hr
(v) power lost due to leakage
Ans.
(i)
P2  P1   Total Volume
Compressor output m3/minute :
:
power consumption :
output
Atm. Pressure  Pumpup time
7.0  0.2  10.2
1.026  4.5
: 901.36 m3/hr
= 15.0227 m3/minute
90 kW
:
901.36 m3/hr
(ii)
(iii)
Specific power consumption
% Leakage in the system
Load time (T)
:
Un load time (t)
:
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Bureau of Energy Efficiency
:
90/901.36 = 0.099 kW/m3/hr
30 secs.
70 secs
13
Paper 3 –Set A Key
% leakage in the system
iv)
v)
:
T
x 100
(T  t)
:
30
x 100
(30  70)
:
Leakage quantity
:
:
Power lost due to leakage :
:
:
30%
0.30x901.36
270.41 m3/hr
Leakage quantity x specific power
consumption
270.41 x 0.099
26.77 kW
L-4 a) In a Thermal Power Station, the steam input to a turbine operating on a
fully condensing mode is 100 Tonnes/Hr. The heat rejection requirement
of the steam turbine condenser is 555 kCals/kg of steam condensed. The
temperatures at the inlet to and outlet from the turbine condenser are
measured to be 27oC and 37o C respectively. Find out the circulating
cooling water flow.
b) An energy audit was conducted to find out the ton of refrigeration (TR) of
an Air Handling Unit (AHU). The audit observations are as under.
Parameter
AHU
Evaporator area (m2)
9.0
Inlet velocity (m/s)
1.81
Inlet air DBT (°C)
21.5
RH (%)
75.0
Enthalpy
(kJ/kg)
53.0
Out let air DBT (°C)
17.4
RH (%)
90.0
Enthalpy
(kJ/kg)
46.4
Density of air
(kg/m3)
1.14
Find out the TR of AHU.
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Bureau of Energy Efficiency
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Paper 3 –Set A Key
Answer:
The quantum of heat rejected in the turbine condenser=
Quantum of steam condensed (kg) * heat rejection
( kcal/kg)
= 100,000 * 555= 55.5 million kcals /Hr
Marks: 2
Heat gained by circulating c. w = Heat rejected in the condenser
Circulating water flow=
100,000 * 555/ (37-27) * specific heat ( 1)
=
5550 m3/ Hr
5 Marks
b)AHU refrigeration load =
Air flow rate (m 3 / h) x Density of air (kg / m 3 ) x Difference in enthalpy
3024 x 4.18
AHU
=
(9.0 x 1.81 x 3600) x (1.14) (53  46.4)
= 34.9 TR
3024 x 4.18
5 marks
L-5
A Cooling Tower cools 1565 m3/hr of water from 44º C to 37.6º C at 29.3º
C wet bulb temperature. The cooling tower fan flow air rate is 989544
m3/hr (air density =1.08 kg/m3) and operates at 2.7 cycles of
concentration.
Find
a)
b)
c)
d)
e)
f)
g)
h)
Range,
Approach,
% CT Effectiveness
L/G Ratio in kg/kg
Cooling Duty Handled in TR
Evaporation Losses in m3/hr
Blow down requirement in m3/hr
Make up water requirement/cell in m3/hr
*
CT Flow, m3/hr
= 1565 (1565000 kg/hr)
*
CT Fan Flow, m3/hr
= 989544
*
CT Fan Flow kg/hr
@ Density of 1.08 kg/m3
= 1068708
Ans:
d) L/G Ratio of C.T. kg/kg
= 1.464
a) CT Range
= (44 – 37.6) = 6.4oC
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Bureau of Energy Efficiency
15
Paper 3 –Set A Key
b) CT Approach
= (37.6 – 29.3) = 8.3oC
c) % CT Effectiveness
= 100 * [Range/Range +
Approach]
= 100 * (6.4) / (6.4 + 8.3)
= 43.53
*
= 1565 * 6.4 * 103
e) Cooling Duty Handled in kCal
(i.e., Flow * Temperature Difference in = 10016 * 103 kCal/hr /
kCal/hr)
3024
3312 TR
f)
Evaporation Losses in
m3/hr
= 0.00085 x 1.8 x 1565 x
6.4
= 15.32 m3/hr
*
Percentage Evaporation Loss
= [15.32/1565]*100
= 0.98 %
g) Blow down requirement for site COC of 2.7
= Evaporation
losses/COC–1
= 15.32/(2.7–1) = 9 m3/hr
h) Make up water requirement in m3/hr
= Evaporation Loss +
Blow down Loss
= 15.32 + 9
= 24.32
L-6
Write short notes on
(i) Effect of supply voltage on capacitors rating
(ii) Pump impeller trimming
(iii) Affinity laws for centrifugal machines
i) Ideally capacitor voltage rating is to match the supply voltage. If the supply voltage is
2
2
lower, the reactive kVAr produced will be the ratio V1 /V2 where V1 is the actual supply
voltage, V2 is the rated voltage.
……. End of Section – III ………….…
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Bureau of Energy Efficiency
16
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